Wang Junhao, Zakrzewski Jakub J, Zychowicz Mikolaj, Vieru Veacheslav, Chibotaru Liviu F, Nakabayashi Koji, Chorazy Szymon, Ohkoshi Shin-Ichi
Department of Chemistry, School of Science, The University of Tokyo 7-3-1 Hongo, Bunkyo-ku Tokyo 113-0033 Japan
Faculty of Chemistry, Jagiellonian University Gronostajowa 2 30-387 Kraków Poland
Chem Sci. 2020 Oct 30;12(2):730-741. doi: 10.1039/d0sc04871b.
Coordination complexes of lanthanide(3+) ions can combine Single-Molecule Magnetism (SMM) with thermally modulated luminescence applicable in optical thermometry. We report an innovative approach towards high performance SMM-based optical thermometers which explores tunable anisotropy and the luminescence re-absorption effect of Ho complexes. Our concept is shown in dinuclear cyanido-bridged molecules, {[Ho(4-pyridone)(HO)][M(CN)]}·HO (M = Co, ; Rh, ; Ir, ) and their magnetically diluted analogues, {[Ho Y (4-pyridone)(HO)][M(CN)]}·HO (M = Co, = 0.11, ; Rh, = 0.12, ; Ir, = 0.10, ). They are built of pentagonal bipyramidal Ho complexes revealing the zero-dc-field SMM effect. Experimental studies and the calculations indicate an Orbach magnetic relaxation with energy barriers varying from 89.8 to 86.7 and 78.7 cm K for , , and , respectively. also differ in the strength of quantum tunnelling of magnetization which is suppressed by hyperfine interactions, and, further, by the magnetic dilution. The Y-based dilution governs the optical properties as exhibit poor emission due to the dominant re-absorption from Ho while show room-temperature blue emission of 4-pyridone. Within ligand emission bands, the sharp re-absorption lines of the Ho electronic transitions were observed. Their strong thermal variation was used in achieving highly sensitive ratiometric optical thermometers whose good performance ranges, lying between 25 and 205 K, are adjustable by using hexacyanidometallates. This work shows that Ho complexes are great prerequisites for advanced opto-magnetic systems linking slow magnetic relaxation with unique optical thermometry exploiting a luminescence re-absorption phenomenon.
镧系(3+)离子的配位络合物可将单分子磁体(SMM)与适用于光学测温的热调制发光相结合。我们报告了一种基于高性能SMM的光学温度计的创新方法,该方法探索了Ho络合物的可调各向异性和发光再吸收效应。我们的概念在双核氰基桥联分子{[Ho(4-吡啶酮)(HO)][M(CN)]}·HO (M = Co, ; Rh, ; Ir, )及其磁稀释类似物{[Ho Y (4-吡啶酮)(HO)][M(CN)]}·HO (M = Co, = 0.11, ; Rh, = 0.12, ; Ir, = 0.10, )中得到体现。它们由五角双锥Ho络合物构成,展现出零直流场SMM效应。实验研究和计算表明,对于 、 和 ,分别存在能量势垒在89.8至86.7和78.7 cm K之间变化的Orbach磁弛豫。 在磁化量子隧穿强度方面也存在差异,这种差异被超精细相互作用抑制,并且进一步被磁稀释抑制。基于Y的稀释控制着光学性质,因为 由于来自Ho的主要再吸收而发射较差,而 显示出4-吡啶酮的室温蓝色发射。在配体发射带内,观察到了Ho电子跃迁的尖锐再吸收线。它们强烈的热变化被用于实现高灵敏度的比率光学温度计,其良好的性能范围在25至205 K之间,可通过使用六氰基金属酸盐进行调节。这项工作表明,Ho络合物是将缓慢磁弛豫与利用发光再吸收现象的独特光学测温相联系的先进光磁系统的重要前提条件。